4.8 Article

Spin Tuning of Electron-Doped Metal-Phthalocyanine Layers

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 136, Issue 14, Pages 5451-5459

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ja501204q

Keywords

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Funding

  1. Ministerio de Ciencia e Innovacion [MAT2010-15659]
  2. Agencia de Gestio d'Ajuts Universitaris i de Recerca [2009 SGR 695]
  3. European Research Council [StG 203239 NOMAD]
  4. Swiss Competence Centre for Materials Science and Technology (CCMX)
  5. ESRF
  6. National Science Foundation International Research Fellowship

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The spin state of organic-based magnets at interfaces is to a great extent determined by the organic environment and the nature of the spin-carrying metal center, which is further subject to modifications by the adsorbate-substrate coupling. Direct chemical doping offers an additional route for tailoring the electronic and magnetic characteristics of molecular magnets. Here we present a systematic investigation of the effects of alkali metal doping on the charge state and crystal field of 3d metal ions in Cu, Ni, Fe, and Mn phthalocyanine (Pc) monolayers adsorbed on Ag. Combined X-ray absorption spectroscopy and ligand field multiplet calculations show that Cu(II), Ni(II), and Fe(II) ions reduce to Cu(I), Ni(I), and Fe(I) upon alkali metal adsorption, whereas Mn maintains its formal oxidation state. The strength of the crystal field at the Ni, Fe, and Mn sites is strongly reduced upon doping. The combined effect of these changes is that the magnetic moment of high- and low-spin ions such as Cu and Ni can be entirely turned off or on, respectively, whereas the magnetic configuration of MnPc can be changed from intermediate (3/2) to high (5/2) spin. In the case of FePc a 10-fold increase of the orbital magnetic moment accompanies charge transfer and a transition to a high-spin state.

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